IMoJIE: Iterative Memory-Based Joint Open Information Extraction
Keshav Kolluru, Samarth Aggarwal, Vipul Rathore, Mausam, Soumen Chakrabarti
摘要
While traditional systems for Open Information Extraction were statistical and rule-based, recently neural models have been introduced for the task. Our work builds upon CopyAttention, a sequence generation OpenIE model (Cui et al., 2018) . Our analysis reveals that CopyAttention produces a constant number of extractions per sentence, and its extracted tuples often express redundant information. We present IMOJIE, an extension to Copy-Attention, which produces the next extraction conditioned on all previously extracted tuples. This approach overcomes both shortcomings of CopyAttention, resulting in a variable number of diverse extractions per sentence. We train IMOJIE on training data bootstrapped from extractions of several non-neural systems, which have been automatically filtered to reduce redundancy and noise. IMOJIE outperforms CopyAttention by about 18 F1 pts, and a BERT-based strong baseline by 2 F1 pts, establishing a new state of the art for the task.
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引用它的顶会 Paper19
- LasUIE: Unifying Information Extraction with Latent Adaptive Structure-aware Generative Language ModelHao Fei, Shengqiong Wu, Jingye Li, Bobo Li 等NeurIPS 2022 · 被引用 114 次
- DetIE: Multilingual Open Information Extraction Inspired by Object DetectionMichael Vasilkovsky, Anton Alekseev, Valentin Malykh, Ilya Shenbin 等AAAI 2022 · 被引用 24 次
- Maximal Clique Based Non-Autoregressive Open Information ExtractionBowen Yu, Yucheng Wang, Tingwen Liu, Hongsong Zhu 等EMNLP 2021 · 被引用 14 次
- OpenIE6: Iterative Grid Labeling and Coordination Analysis for Open Information ExtractionKeshav Kolluru, Vaibhav Adlakha, Samarth Aggarwal, Mausam 等EMNLP 2020 · 被引用 13 次
- Guide the Many-to-One Assignment: Open Information Extraction via IoU-aware Optimal TransportKaiwen Wei, Yiran Yang, Li Jin, Xian Sun 等ACL 2023 · 被引用 10 次
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